Data line production defect nondestructive testing method
By designing the parallel connection of conversion components and light bulbs that are adapted to different interface types, the problem of inefficient data line detection is solved and efficient and reliable non-destructive testing is achieved.
Patent Information
- Application Number
- CN202510436508.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2025-07-11
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the non-destructive testing of existing data cable production defects, due to the diverse types of data cable connectors, the inspectors need to frequently replace the plug-in ends, which is inefficient in detection and low practicality.
A conversion component is designed, including plugs and conversion parts. Through one-way circumferential conversion and positioning locking, it adapts to different types of data line interface detection, expands the detection range, and is connected in parallel through multiple light bulbs to ensure that the light bulb can still work normally during the detection process.
It improves the practicality and efficiency of data line detection, expands the detection range, and can still detect normally when the light bulb is damaged, improving the reliability of detection.
Smart Images

Figure CN120294629A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of data cable detection, and more specifically, it relates to a method for non-destructive detection of production defects of data cables. Background Art
[0002] Among the components of a data cable, the quality of the connector connecting to a charger or other external devices needs to be strictly controlled. Wear defect is one of the common defects on the metal shell of the data cable connector. This defect may cause problems such as a decrease in the power output rate of the data cable, data transmission interruption, and difficult plugging and unplugging, greatly reducing the user experience; therefore, the quality of the data cable will directly affect the efficiency and safety of device charging and data transmission.
[0003] Currently, in the process of non-destructive detection of production defects of data cables on the market, there are mainly the following technical problems:
[0004] In the existing process of non-destructive detection of production defects of data cables, due to the existence of various types of combination methods at both ends of the data cable, the inspectors need to frequently replace the plug-in ends during the detection process according to different types of connectors. After a long time, the detection efficiency of the inspectors is low, and the practicability is low. Summary of the Invention
[0005] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide a method for non-destructive detection of production defects of data cables that can perform one-way circumferential conversion and positioning locking on a conversion component rotatably fitted on a rotating column, so as to adapt to the detection of data cables to be detected with different types of combinations, improve the practicability of subsequent data cable detection, and expand the detection range.
[0006] To achieve the above purpose, the present invention provides the following technical solutions:
[0007] A method for non-destructive detection of production defects of data cables, including a detection component, on which a conversion component is rotatably arranged.
[0008] The conversion component includes a plug member rotatably arranged on the detection component and a conversion member rotatably arranged on the plug member.
[0009] The detection component includes a mounting base plate, on the top of which a rotating column is fixed, a first T-shaped platform is fixed on the top of the mounting base plate, a rotating shaft is fixed on the top of the first T-shaped platform, a sleeve is rotatably arranged on the circumferential surface of the rotating shaft, a first semi-circular insulating plate is fixed on the circumferential surface of the sleeve, and a semi-circular conductive sheet is fixed inside the first semi-circular insulating plate.
[0010] The plug member includes a rotating cylinder rotatably provided on a rotating column. A rotating disc is fixed to the outer wall of the rotating cylinder. A plurality of side plates are fixed to the top of the rotating disc. A second semi-circular insulating plate is fixed to one side surface of each of the plurality of side plates. A conductive column is fixed to the inner wall of the second semi-circular insulating plate. The end of the conductive column is electrically connected to a data line plug fixed to the opposite side surface of the side plate through a wire.
[0011] The present invention is further configured as follows: A plurality of lamp sockets are fixed to the top of the mounting base plate. The plurality of lamp sockets are connected in parallel through wires. A light bulb is screwed inside each of the plurality of lamp sockets.
[0012] The end of the semi-circular conductive sheet is electrically connected to a wiring post extending outward through the inner wall of the first semi-circular insulating plate. The wiring post is connected in series with each lamp socket.
[0013] A second T-shaped platform is fixed to the top of the mounting base plate. A multi-port data line socket is fixed to the top of the second T-shaped platform. A storage battery electrically connected to the multi-port data line socket is fixed to the top of the mounting base plate away from the side surface of the second T-shaped platform.
[0014] The present invention is further configured as follows: A plurality of wedge-shaped grooves are formed in a circumferential array on the circumferential side surface of the rotating disc.
[0015] A side baffle is fixed to the top of the mounting base plate between the first T-shaped platform and the rotating column. An extension cylinder is fixedly penetrated through the side baffle. A first spring is fixed to the inner wall of the extension cylinder. A first sliding column slidably arranged inside the extension cylinder is fixed to the end of the first spring. A first sliding plate is fixed to the end of the first sliding column. Two first guiding rods slidably and fittingly penetrated through the first sliding plate are fixed to the side surface of the side baffle. Limit nuts are threadedly connected to the ends of both first guiding rods. A first inclined surface column is fixed to the side surface of the first sliding plate.
[0016] The present invention is further configured as follows: A threaded column is fixed to the top of the rotating column. A nut is threadedly connected to the circumferential side surface of the threaded column.
[0017] The conversion member includes a rotating cylinder rotatably provided on the outer wall of the rotating cylinder. A rotating ring is fixed to the top of the rotating cylinder. A vertical plate is fixed to the top of the rotating ring. A conversion cylinder is communicated with the side surface of the vertical plate. A rotating handle is fixed to the end of the conversion cylinder.
[0018] The present invention is further configured as follows: A second spring is fixed to the inside of the conversion cylinder. A second sliding column slidably arranged inside the conversion cylinder is fixed to the end of the second spring. A second sliding plate is fixed to the end of the second sliding column. Two second guiding rods slidably and fittingly penetrated through the second sliding plate are fixed to the side surface of the vertical plate. Limit nuts are threadedly connected to the ends of both second guiding rods. A second inclined surface column is fixed to the side surface of the second sliding plate.
[0019] The wedge-shaped grooves are slidably and fittingly arranged with the first inclined surface column and the second inclined surface column.
[0020] The present invention is further configured such that: an insulating frame covering the conductive column is fixed to one side surface of a plurality of the side plates.
[0021] A vertical baffle is fixed on the top of the first T-shaped platform away from the outer wall of the sleeve, and an arc-shaped limit rod slidingly arranged through the first semicircular insulating plate is fixed on the side of the vertical baffle. The end of the arc-shaped limit rod is located on the inner wall of the first semicircular insulating plate and fixed with a limit circular plate.
[0022] An arc spring is fixed between the first semicircular insulating plate and the vertical baffle.
[0023] The present invention is further configured as follows: a top plate is fixed to the outer wall of the sleeve near the top, and a plug-in hole is formed through the top of the top plate.
[0024] A guide tube is fixed on the top of the first T-shaped platform below the plug-in hole, a vertical groove extending downward is opened on the top of the guide tube, a sliding plate is slidably arranged inside the vertical groove, a plug rod slidably arranged inside the guide tube is fixed on the side of the sliding plate, and the top of the plug rod is plugged into the plug-in hole.
[0025] The present invention is further configured as follows: a side plate is fixed to the top of the first T-shaped platform away from the side of the vertical baffle, a displacement screw is threadedly connected through the side plate, and a contact ball is fixed to the end of the displacement screw.
[0026] A limiting round rod is fixed on the side of the side plate above the displacement screw, a transverse groove is opened on the top of the first T-shaped platform, a limiting block is slidably arranged inside the transverse groove, and a trapezoidal slide plate is fixed on the top of the limiting block and slides through the limiting round rod.
[0027] The present invention is further configured as follows: a resistance rod which is slidably matched with the inclined surface of the trapezoidal slide plate is fixed on the side surface of the sliding plate outside the guide tube, and the end of the resistance rod is configured in a dome shape.
[0028] A third spring is fixed between the insertion rod and the first T-shaped platform.
[0029] A fourth spring sleeved on the circumferential side of the limiting round rod is fixed between the side plate and the trapezoidal slide plate.
[0030] The advantages of the present invention are: 1. During use, the present invention performs unidirectional circular conversion and position locking on the conversion component that rotates on the rotating column according to the wiring interface conditions at both ends of the data line to be detected, so as to adapt to the detection of different types of combinations of data lines to be detected, improve the practicality of later data line detection, and expand the detection range.
[0031] 2. The present invention adopts an electrical connection mode in which multiple bulbs are connected in parallel, preventing individual bulbs from being damaged among multiple bulbs in the later stage. When detecting the data cable, the other undamaged bulbs can light up, thereby further improving the defect non-destructive detection process of the data cable to be detected. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 It is a schematic diagram of the overall structure of the present invention.
[0033] Figure 2 It is a schematic diagram of the structure of the detection component of the present invention.
[0034] Figure 3 For the present invention Figure 2 It is an enlarged schematic diagram of the structure at A in the present invention.
[0035] Figure 4 It is a cross-sectional schematic diagram of the detection component of the present invention.
[0036] Figure 5 For the present invention Figure 4 It is an enlarged schematic diagram of the structure at B in the present invention.
[0037] Figure 6 For the present invention Figure 4 It is an enlarged schematic diagram of the structure at C in the present invention.
[0038] Figure 7 It is a schematic diagram of the structure of the detection component of the present invention from another angle.
[0039] Figure 8 For the present invention Figure 7 It is an enlarged schematic diagram of the structure at D in the present invention.
[0040] Figure 9 It is a schematic diagram of the structure of the conversion component of the present invention.
[0041] Figure 10 It is a schematic diagram of the structure of the plug part of the present invention.
[0042] Figure 11 It is a cross-sectional schematic diagram of the plug part of the present invention.
[0043] Figure 12 It is a schematic diagram of the structure of the conversion part of the present invention.
[0044] Figure 13 It is a top view of the conversion part of the present invention.
[0045] Figure 14 It is a cross-sectional schematic diagram of the conversion part of the present invention.
[0046] In the figure: 1, detection component; 2, conversion component; 3, plug component; 4, conversion component; 101, mounting base plate; 102, rotating column; 103, first T-shaped platform; 104, rotating shaft; 105, sleeve; 106, first semicircular insulating plate; 107, semicircular conductive sheet; 108, lamp holder;
[0047] 109, light bulb; 110, terminal; 111, second T-shaped platform; 112, multi-port data cable socket; 113, battery; 114, side baffle; 115, extension tube; 116, first spring; 117, first slide column; 118, first slide plate; 119, first guide rod; 120, first inclined column; 121, threaded column; 122, vertical baffle; 123, arc-shaped limit rod; 124, arc spring; 125, top plate; 126, plug hole; 127, guide tube; 128, vertical slot; 129, sliding plate; 130, plug rod; 131, side plate; 132, displacement screw; 133, contact ball ; 134, limit rod; 135, horizontal groove; 136, limit block; 137, trapezoidal slide; 138, resistance rod; 139, third spring; 140, fourth spring; 301, rotating cylinder; 302, turntable; 303, side plate; 304, second semicircular insulating plate; 305, conductive column; 306, data line plug; 307, wedge groove; 308, insulating frame; 401, rotating cylinder; 402, rotating ring; 403, vertical plate; 404, conversion cylinder; 405, turning handle; 406, second spring; 407, second sliding column; 408, second slide; 409, second guide rod; 410, second inclined column. DETAILED DESCRIPTION
[0048] It should be noted that, in the absence of conflict, the embodiments and features in the embodiments of the present application may be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.
[0049] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meanings as commonly understood by ordinary technicians in the technical field to which this application belongs.
[0050] In the present invention, unless otherwise specified, the directions used, such as "up" and "down", usually refer to the directions shown in the drawings, or to the vertical, perpendicular or gravity directions; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the drawings; "inside" and "outside" refer to the inside and outside relative to the outline of each component itself, but the above-mentioned directions are not used to limit the present invention.
[0051] For example, see Figures 1-14 , the present invention provides the following technical solutions:
[0052] A method for non-destructive detection of production defects of data cables. Specifically, it includes a detection component 1, and a conversion component 2 is rotatably arranged on the detection component 1; the conversion component 2 includes a plug member 3 rotatably arranged on the detection component 1 and a conversion member 4 rotatably arranged on the plug member 3; the detection component 1 includes a mounting base plate 101, a rotating column 102 is fixed on the top of the mounting base plate 101, a first T-shaped platform 103 is fixed on the top of the mounting base plate 101, a rotating shaft 104 is fixed on the top of the first T-shaped platform 103, a sleeve 105 is rotatably arranged on the circumferential side of the rotating shaft 104, a first semi-circular insulating plate 106 is fixed on the circumferential side of the sleeve 105, and a semi-circular conductive sheet 107 is fixed inside the first semi-circular insulating plate 106; the plug member 3 includes a rotating cylinder 301 rotatably arranged on the rotating column 102, a turntable 302 is fixed on the outer wall of the rotating cylinder 301, a plurality of side plates 303 are fixed on the top of the turntable 302, a second semi-circular insulating plate 304 is fixed on one side surface of each of the plurality of side plates 303, a conductive column 305 is fixed on the inner wall of the second semi-circular insulating plate 304, and the end of the conductive column 305 is electrically connected to a data cable plug 306 fixed on the opposite side surface of the side plate 303 through a wire.
[0053] Furthermore, a plurality of lamp sockets 108 are fixed on the top of the mounting base plate 101, and the plurality of lamp sockets 108 are connected in parallel through wires. A bulb 109 is screwed inside each of the plurality of lamp sockets 108; the end of the semi-circular conductive sheet 107 is electrically connected to a wiring column 110 that penetrates the inner wall of the first semi-circular insulating plate 106 and extends outward, and the wiring column 110 is connected in series with each of the lamp sockets 108; a second T-shaped platform 111 is fixed on the top of the mounting base plate 101, a multi-port data cable socket 112 is fixed on the top of the second T-shaped platform 111, and a storage battery 113 electrically connected to the multi-port data cable socket 112 is fixed on the top of the mounting base plate 101 away from the side surface of the second T-shaped platform 111.
[0054] The specific application of this Embodiment 1 is as follows: The entire device performs a one-way circular conversion on the conversion component 2 rotatably fitted on the rotating column 102 according to the connection interface conditions at both ends of the data cable to be detected (the connection interfaces at both ends of the data cable to be detected can be any two combinations of USB, micro USB, type-c, and lightning) so as to adapt to the detection of data cables to be detected with different type combinations.
[0055] During the detection process, insert one end socket of the data cable to be detected into any one of the matching sockets of the multi-port data cable socket 112 fixed on the top of the second T-shaped platform 111. Subsequently, insert the other end interface of the data cable to be detected into the data cable plug 306 that is matched with it and has undergone a one-way circular conversion and is also matched with the other end of the data cable to be detected for plugging and matching. Then, according to the lighting process of the bulbs 109 screwed inside the plurality of lamp sockets 108, perform non-destructive detection on the data cable to be detected to determine whether the data cable to be detected meets the factory requirements.
[0056] During the above detection process, through the electrical connection mode in which multiple bulbs 109 are connected in parallel with each other, in case some of the multiple bulbs 109 are damaged later, the other undamaged bulbs 109 can achieve the lighting effect during the data line detection process, thereby further improving the defect non-destructive detection process of the data line to be detected.
[0057] Embodiment 2, please refer to Figures 1-14, in the second embodiment, the following improvements are made on the basis of the first embodiment. Specifically, a plurality of wedge-shaped grooves 307 are arranged in a circumferential array on the circumferential side surface of the turntable 302; a side baffle 114 is fixed between the first T-shaped platform 103 and the rotating column 102 at the top of the mounting base plate 101. An extension cylinder 115 is fixedly penetrated through the side baffle 114. A first spring 116 is fixed on the inner wall of the extension cylinder 115. The end of the first spring 116 is fixed with a first sliding column 117 slidably arranged inside the extension cylinder 115. The end of the first sliding column 117 is fixed with a first sliding plate 118. Two first guiding rods 119 are fixed on the side surface of the side baffle 114 and are slidably and coaxially arranged on the first sliding plate 118. Limit nuts are threadedly connected to the ends of the two first guiding rods 119. A first inclined surface column 120 is fixed on the side surface of the first sliding plate 118; a threaded column 121 is fixed on the top of the rotating column 102, and a nut is threadedly connected to the circumferential side surface of the threaded column 121; the conversion member 4 includes a rotating cylinder 401 rotatably arranged on the outer wall of the rotating cylinder 301. A rotating ring 402 is fixed on the top of the rotating cylinder 401. A vertical plate 403 is fixed on the top of the rotating ring 402. A conversion cylinder 404 is communicated with the side surface of the vertical plate 403. A rotating handle 405 is fixed at the end of the conversion cylinder 404; a second spring 406 is fixed inside the conversion cylinder 404. The end of the second spring 406 is fixed with a second sliding column 407 slidably arranged inside the conversion cylinder 404. The end of the second sliding column 407 is fixed with a second sliding plate 408. Two second guiding rods 409 are fixed on the side surface of the vertical plate 403 and are slidably and coaxially arranged on the second sliding plate 408. Limit nuts are threadedly connected to the ends of the two second guiding rods 409. A second inclined surface column 410 is fixed on the side surface of the second sliding plate 408; the wedge-shaped grooves 307 are slidably matched with the first inclined surface column 120 and the second inclined surface column 410; insulating frames 308 covering the conductive columns 305 are fixed on one side surface of a plurality of side plates 303; a vertical baffle 122 is fixed on the top of the first T-shaped platform 103 away from the outer wall of the sleeve 105. An arc-shaped limiting rod 123 slidably arranged through the first semi-circular insulating plate 106 is fixed on the side surface of the vertical baffle 122. A limiting circular plate is fixed on the inner wall of the first semi-circular insulating plate 106 at the end of the arc-shaped limiting rod 123; an arc-shaped spring 124 is fixed between the first semi-circular insulating plate 106 and the vertical baffle 122; a top plate 125 is fixed near the top of the outer wall of the sleeve 105. A plugging hole 126 is penetrated through the top of the top plate 125; a guiding tube 127 is fixed on the top of the first T-shaped platform 103 below the plugging hole 126. A vertical groove 128 extending downward is opened at the top of the guiding tube 127. A sliding plate 129 is slidably arranged inside the vertical groove 128. A plug rod 130 slidably arranged inside the guiding tube 127 is fixed on the side surface of the sliding plate 129. The top of the plug rod 130 is plugged and matched with the plugging hole 126; a side position plate 131 is fixed on the top of the first T-shaped platform 103 away from the side surface of the vertical baffle 122. A displacement screw rod 132 is threadedly connected through the side position plate 131. A contact ball 133 is fixed at the end of the displacement screw rod 132;A limiting circular rod 134 is fixed above the side of the side plate 131 and located above the displacement screw rod 132. A transverse groove 135 is opened at the top of the first T-shaped platform 103. A limiting block 136 is slidably arranged inside the transverse groove 135. A trapezoidal sliding plate 137 that is penetrated and slid by the limiting circular rod 134 is fixed at the top of the limiting block 136. A contact rod 138 that is slidably matched with the inclined surface of the trapezoidal sliding plate 137 is fixed outside the guide tube 127 on the side of the sliding plate 129. The end of the contact rod 138 is arranged in a round top shape. A third spring 139 is fixed between the insertion rod 130 and the first T-shaped platform 103. A fourth spring 140 sleeved on the circumferential side of the limiting circular rod 134 is fixed between the side plate 131 and the trapezoidal sliding plate 137.;
[0058] The specific application of the second embodiment is as follows: Before detection, by rotating the throttle grip 405, the rotating cylinder 401 is driven to rotate on the outer wall of the rotating cylinder 301, so that the second inclined surface column 410 fixed on the side surface of the second sliding plate 408 slides from the inside of the wedge-shaped groove 307 to the inside of the adjacent wedge-shaped groove 307. During the process that the second inclined surface column 410 fixed on the side surface of the second sliding plate 408 slides from the inside of the wedge-shaped groove 307 to the inside of the adjacent wedge-shaped groove 307, the inclined surface of the second inclined surface column 410 slides out of the wedge-shaped groove 307, and at the same time, the second spring 406 fixedly connected between the conversion cylinder 404 and the second sliding column 407 is compressed, so that the second sliding plate 408 fixed at the end of the second sliding column 407 synchronously makes a linear motion close to the side surface of the vertical plate 403 between the two second guide rods 409 until the second inclined surface column 410 slides from the inside of the wedge-shaped groove 307 to the inside of the adjacent wedge-shaped groove 307. After that, the compressed second spring 406 between the conversion cylinder 404 and the second sliding column 407 is reset, driving the second inclined surface column 410 to slide and be clamped in the adjacent wedge-shaped groove 307. During this process, the inclined surface of the second inclined surface column 410 slides out of the wedge-shaped groove 307 and is simultaneously clamped in the adjacent wedge-shaped groove 307, thereby driving the rotating cylinder 301 rotatably fitted on the circumferential side surface of the rotating column 102 to make a circumferential rotation in the opposite direction to the throttle grip 405. When the rotating cylinder 301 makes a circumferential rotation in the opposite direction to the throttle grip 405, the first inclined surface column 120 also starts to slide from the inside of the wedge-shaped groove 307 to the inside of the adjacent wedge-shaped groove 307. When the first inclined surface column 120 starts to slide from the inside of the wedge-shaped groove 307 to the inside of the adjacent wedge-shaped groove 307, the inclined surface of the first inclined surface column 120 slides out of the wedge-shaped groove 307, and at the same time, the first spring 116 fixedly connected between the extension cylinder 115 and the first sliding column 117 is compressed synchronously, so that the first sliding plate 118 synchronously makes a linear motion close to the side surface of the side baffle 114 on the circumferential side surfaces of the two first guide rods 119 until the inclined surface of the first inclined surface column 120 slides out of the wedge-shaped groove 307 and enters the inside of the adjacent next wedge-shaped groove 307. At this time, the compressed first spring 116 between the extension cylinder 115 and the first sliding column 117 starts to elastically reset, driving the first inclined surface column 120 to slide and be clamped in the adjacent next wedge-shaped groove 307, thereby completing the one-way circumferential conversion movement of the conversion assembly 2 on the rotating column 102, and synchronously locking the conversion assembly 2 after the one-way circumferential conversion to adapt to the detection of data cables with different interface types at both ends, increasing the practicability in the detection process and expanding the detection range in the whole detection process;
[0059] During the one-way circular conversion process of the above-mentioned conversion component 2 and before the sleeve 105 is positioned and locked, through the one-way circular conversion process of the conversion component 2, the end and the circumferential side surface of the conductive column 305 gradually approach the inner wall of the semi-circular conductive sheet 107 fixed inside the first semi-circular insulating plate 106. And through the subsequent continuous one-way circular conversion process of the conversion component 2, an extrusion force is generated on the inner wall of the semi-circular conductive sheet 107, driving the first semi-circular insulating plate 106 to rotate circumferentially on the circumferential side surface of the arc-shaped limiting rod 123, and synchronously compressing the arc-shaped spring 124 fixedly connected between the vertical baffle 122 and the first semi-circular insulating plate 106, so that the first semi-circular insulating plate 106 rotates circumferentially on the circumferential side surface of the arc-shaped limiting rod 123 towards the vertical baffle 122 until the conductive column 305 slides out of the inner walls of the semi-circular conductive sheet 107 and the first semi-circular insulating plate 106 in sequence. Under the elastic reset action of the compressed arc-shaped spring 124, the first semi-circular insulating plate 106 rotates reversely, so that the next adjacent conductive column 305 can conductively contact the semi-circular conductive sheet 107 fixed on the inner wall of the first semi-circular insulating plate 106, sequentially assisting the conversion component 2 to complete the one-way circular conversion on the circumferential side surface of the rotating column 102, improving the practicability of the later data line detection and expanding the detection range;
[0060] After the above-mentioned conversion component 2 performs the one-way circular conversion, by rotating the displacement screw 132, the contact ball 133 fixed at the end of the displacement screw 132 is driven to slide synchronously on the side surface of the trapezoidal slide plate 137, so that the limiting block 136 fixed at the bottom of the trapezoidal slide plate 137 slides inside the transverse groove 135, and the round top end of the abutting rod 138 fixed outside the guide tube 127 on the side surface of the slide plate 129 slides on the inclined surface of the trapezoidal slide plate 137, driving the insertion rod 130 fixed on the side surface of the slide plate 129 to slide upward inside the guide tube 127. Thus, through the elastic tensile force of the third spring 139 fixedly connected between the insertion rod 130 and the first T-shaped platform 103, the insertion rod 130 is slowly inserted into the insertion hole 126, thereby positioning and locking the sleeve 105 during the rotation process, preventing the conductive contact between the semi-circular conductive sheet 107 and the conductive column 305 from loosening during the later data line detection, and avoiding its influence on the later data line detection process.
[0061] Obviously, the above-described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present invention.
[0062] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular forms are also intended to include the plural forms. In addition, it should also be understood that when the terms "comprising" and / or "including" are used in this specification, they specify the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0063] It should be noted that the terms "first", "second", etc. in the description, claims and above-mentioned drawings of the present application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein.
[0064] The above are only the preferred embodiments of the present invention and are not used to limit the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
[0065] The above are only the preferred embodiments of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be pointed out that for those of ordinary skill in the art, several improvements and refinements made without departing from the principle of the present invention should also be regarded as within the protection scope of the present invention.
Claims
1. A non-destructive detection method for production defects of a data cable, including a detection component (1), characterized in that: A conversion component (2) is rotatably arranged on the detection component (1); The conversion component (2) includes a plug member (3) rotatably arranged on the detection component (1) and a conversion member (4) rotatably arranged on the plug member (3); The detection component (1) includes a mounting base plate (101). A rotating column (102) is fixed on the top of the mounting base plate (101). A first T-shaped platform (103) is fixed on the top of the mounting base plate (101). A rotating shaft (104) is fixed on the top of the first T-shaped platform (103). A sleeve (105) is rotatably arranged on the circumferential side of the rotating shaft (104). A first semi-circular insulating plate (106) is fixed on the circumferential side of the sleeve (105). A semi-circular conductive sheet (107) is fixed inside the first semi-circular insulating plate (106); The plug member (3) includes a rotating cylinder (301) rotatably arranged on the rotating column (102). A rotating disc (302) is fixed on the outer wall of the rotating cylinder (301). A plurality of side plates (303) are fixed on the top of the rotating disc (302). A second semi-circular insulating plate (304) is fixed on one side surface of each of the plurality of side plates (303). A conductive column (305) is fixed on the inner wall of the second semi-circular insulating plate (304). The end of the conductive column (305) is electrically connected by a wire to a data line plug (306) fixed on the opposite side surface of the side plate (303).
2. The non-destructive detection method for production defects of a data cable according to claim 1, wherein: A plurality of lamp sockets (108) are fixed on the top of the mounting base plate (101). The plurality of lamp sockets (108) are connected in parallel by wires. A bulb (109) is screwed inside each of the plurality of lamp sockets (108); The end of the semi-circular conductive sheet (107) is electrically connected to a wiring post (110) extending outward through the inner wall of the first semi-circular insulating plate (106). The wiring post (110) is connected in series with each lamp socket (108); A second T-shaped platform (111) is fixed on the top of the mounting base plate (101). A multi-port data line socket (112) is fixed on the top of the second T-shaped platform (111). A storage battery (113) electrically connected to the multi-port data line socket (112) is fixed on the top of the mounting base plate (101) away from the side surface of the second T-shaped platform (111).
3. The non-destructive detection method for production defects of a data cable according to claim 2, wherein: A plurality of wedge-shaped grooves (307) are formed in a circumferential array on the circumferential side of the rotating disc (302); A side baffle (114) is fixed on the top of the mounting base plate (101) between the first T-shaped platform (103) and the rotating column (102). An extension cylinder (115) is fixedly penetrated through the side baffle (114). A first spring (116) is fixed on the inner wall of the extension cylinder (115). A first sliding column (117) slidably arranged inside the extension cylinder (115) is fixed at the end of the first spring (116). A first sliding plate (118) is fixed at the end of the first sliding column (117). Two first guiding rods (119) slidably and cooperatively penetrated through the first sliding plate (118) are fixed on the side surface of the side baffle (114). Limit nuts are threadedly connected to the ends of both the first guiding rods (119). A first inclined surface column (120) is fixed on the side surface of the first sliding plate (118).
4. A method for non-destructive detection of production defects of a data cable according to claim 3, characterized in that: A threaded column (121) is fixed to the top of the rotating column (102), and a nut is screwed on the circumferential side of the threaded column (121). The conversion member (4) includes a rotating cylinder (401) rotatably provided on the outer wall of the rotating drum (301). A rotating ring (402) is fixed to the top of the rotating cylinder (401), a vertical plate (403) is fixed to the top of the rotating ring (402), a conversion cylinder (404) is communicated and arranged on the side of the vertical plate (403), and a rotating handle (405) is fixed to the end of the conversion cylinder (404).
5. A non-destructive detection method for production defects of a data cable according to claim 4, characterized in that: A second spring (406) is fixed inside the conversion cylinder (404). A second sliding column (407) slidably arranged inside the conversion cylinder (404) is fixed to the end of the second spring (406). A second sliding plate (408) is fixed to the end of the second sliding column (407). Two second guide rods (409) which penetrate and are slidably matched with the second sliding plate (408) are fixed to the side of the vertical plate (403). Limit nuts are screwed to the ends of the two second guide rods (409). A second inclined surface column (410) is fixed to the side of the second sliding plate (408). The wedge-shaped groove (307) is slidably matched with the first inclined surface column (120) and the second inclined surface column (410).
6. A non-destructive detection method for production defects of a data cable according to claim 5, characterized in that: Insulating frames (308) covering the conductive columns (305) are fixed to one side surface of a plurality of the side plates (303). A vertical baffle (122) is fixed to the top of the first T-shaped platform (103) away from the outer wall of the sleeve (105). An arc-shaped limiting rod (123) which penetrates and is slidably arranged in the first semi-circular insulating plate (106) is fixed to the side of the vertical baffle (122). A limiting circular plate is fixed to the end of the arc-shaped limiting rod (123) on the inner wall of the first semi-circular insulating plate (106). An arc-shaped spring (124) is fixed between the first semi-circular insulating plate (106) and the vertical baffle (122).
7. A method for non-destructive detection of production defects of a data cable according to claim 6, characterized in that: A top plate (125) is fixed to the outer wall of the sleeve (105) near the top, and a plug hole (126) is penetrated and opened on the top of the top plate (125). A guide tube (127) is fixed to the top of the first T-shaped platform (103) below the plug hole (126). A vertical groove (128) extending downward is opened on the top of the guide tube (127). A sliding plate (129) is slidably arranged in the vertical groove (128). A plug rod (130) slidably arranged inside the guide tube (127) is fixed to the side of the sliding plate (129). The top of the plug rod (130) is in plug-in fit with the plug hole (126).
8. A non-destructive detection method for production defects of a data cable according to claim 7, characterized in that: A side position plate (131) is fixed to the top of the first T-shaped platform (103) away from the side of the vertical baffle (122). A displacement screw rod (132) is penetrated and threadedly connected to the side position plate (131), and a contact ball (133) is fixed to the end of the displacement screw rod (132). A limiting round rod (134) is fixed on the side of the side plate (131) above the displacement screw rod (132); a transverse groove (135) is provided on the top of the first T-shaped platform (103); a limiting block (136) is slidably arranged inside the transverse groove (135); a trapezoidal slide plate (137) is fixed on the top of the limiting block (136) and is slidably arranged to penetrate the limiting round rod (134).
9. A method for non-destructive detection of production defects of a data cable according to claim 8, characterized in that: A resisting rod (138) is fixed on the side of the sliding plate (129) and located outside the guide tube (127) and is slidably matched with the inclined surface of the trapezoidal sliding plate (137), and the end of the resisting rod (138) is arranged in a dome shape; A third spring (139) is fixed between the insertion rod (130) and the first T-shaped platform (103); A fourth spring (140) is fixed between the side plate (131) and the trapezoidal slide plate (137) and is sleeved on the circumferential side of the limiting round rod (134).